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首页> 外文期刊>Neuroinformatics >Combining a Patch-based Approach with a Non-rigid Registration-based Label Fusion Method for the Hippocampal Segmentation in Alzheimer's Disease
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Combining a Patch-based Approach with a Non-rigid Registration-based Label Fusion Method for the Hippocampal Segmentation in Alzheimer's Disease

机译:将基于贴剂的方法与基于非刚性注册的标签融合方法相结合,用于阿尔茨海默病的海马分段

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摘要

We provide and evaluate an open-source software solution for automatically hippocampal segmentation from T1-weighted (T1w) magnetic resonance imaging (MRI). The method is applied for measuring the hippocampal volume, which allows discriminate between patients with Alzheimer's disease (AD) or mild cognitive impairment (MCI) and elderly controls (NC). The method is based on a fast patch-based label fusion method, whose selected patches and their weights are calculated from a combination of similarity measures between patches using intensity-based distances and labeling-based distances. These combined similarity measures produces better selection of the patches, and their weights are more robust. The algorithm is trained with the Harmonized Hippocampal Protocol (HarP). The proposal is compared with FreeSurfer and other label fusion methods. To evaluate the performance and the robustness of the proposed label fusion method, we employ two databases of T1w MRI of human brains. For AD vs NC, we obtain a high degree of accuracy, approximately 90 %. For MCI vs NC, we obtain accuracies around 75 %. The average time for the hippocampal segmentation from a T1w MRI is less than 17 minutes.
机译:我们提供并评估从T1加权(T1W)磁共振成像(MRI)自动海马分段的开源软件解决方案。该方法用于测量海马体积,这允许区分阿尔茨海默病(AD)或轻度认知障碍(MCI)和老年人对照(NC)。该方法基于基于快速的贴剂标签融合方法,其所选贴片及其重量由使用基于强度的距离和基于标记的距离的贴片之间的相似性测量的组合来计算。这些组合的相似度措施产生了更好地选择补丁,它们的重量更加坚固。该算法用协调的海马协议(HARP)培训。将该提案与FreeSurfer和其他标签融合方法进行比较。为了评估所提出的标签融合方法的性能和稳健性,我们使用人脑的两个T1W MRI数据库。对于AD VS NC,我们获得高度精度,大约90%。对于MCI VS NC,我们可以获得约75%的精度。从T1W MRI的海马分割的平均时间小于17分钟。

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